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Published on: December 6, 2024
Amphipathic CRAC-Containing Peptides Derived from the Influenza Virus A M1 Protein Modulate Cholesterol-Dependent
A Ya Dunina-Barkovskaya1, Kh S Vishnyakova2, A O Golovko3
1Belozersky Institute of Physico-Chemical Biology, Lomonosov Moscow State University, Moscow, 119991, Russia. dunina.aya@gmail.com.
Abstract:
Entry of many viral and bacterial pathogens into host cells depends on cholesterol and/or cholesterol-enriched domains (lipid rafts) in the cell membrane. Earlier, we showed that influenza virus A matrix protein M1 contains amphipathic α-helices with exposed cholesterol-recognizing amino acid consensus (CRAC) motifs. In order to test possible functional activity of these motifs, we studied the effects of three synthetic peptides corresponding to the CRAC-containing α-helices of the viral M1 protein on the phagocytic activity of cultured mouse IC-21 macrophages. The following peptides were used: LEVLMEWLKTR (M1 α-helix 3, a.a. 39-49; further referred to as peptide 1), NNMDKAVKLYRKLK (M1 α-helix 6, a.a. 91-105; peptide 2), and GLKNDLLENLQAYQKR (M1 α-helix 13, a.a. 228-243; peptide 3). We found that all three peptides modulated interactions of IC-21 macrophages with non-opsonized 2-µm target particles. The greatest effect was demonstrated by peptide 2: in the presence of 35 μM peptide 2, the phagocytic index of IC-21 macrophages exceeded the control value by 60%; 10-11 mM methyl-β-cyclodextrin abolished this effect. Peptides 1 and 3 exerted weak inhibitory effect in a narrow concentration range of 5-10 μM. The dose-response curves could be approximated by a sum of two (stimulatory and inhibitory) components with different Hill coefficients, suggesting existence of at least two peptide-binding sites with different affinities on the cell surface. CD spectroscopy confirmed that the peptides exhibit structural flexibility in solutions. Altogether, our data indicate that amphipathic CRAC-containing peptides derived from the viral M1 protein modulate lipid raft-dependent processes in IC-21 macrophages.
Insights
Synthetic peptides from influenza M1 protein modulate macrophage phagocytosis by interacting with cholesterol-rich lipid rafts. These findings suggest new targets for antiviral therapies by disrupting pathogen entry mechanisms.
Area of Science:
- Cell Biology
- Virology
- Biochemistry
Background:
- Pathogen entry into host cells often relies on cholesterol and lipid rafts.
- Influenza A virus M1 protein contains amphipathic α-helices with cholesterol-recognizing amino acid consensus (CRAC) motifs.
Purpose of the Study:
- To investigate the functional activity of CRAC motifs in influenza M1 protein.
- To determine the effect of M1-derived peptides on macrophage phagocytosis.
Main Methods:
- Synthesized three peptides corresponding to CRAC-containing α-helices of M1 protein.
- Assessed the phagocytic activity of cultured mouse IC-21 macrophages with non-opsonized target particles in the presence of peptides.
- Used methyl-β-cyclodextrin to abolish peptide effects.
- Analyzed dose-response curves and peptide structural flexibility using CD spectroscopy.
Main Results:
- All three M1 peptides modulated macrophage interactions with target particles.
- Peptide 2 significantly enhanced phagocytic index by 60% at 35 μM, an effect abolished by methyl-β-cyclodextrin.
- Peptides 1 and 3 showed weak inhibition at 5-10 μM.
- Dose-response data suggested at least two binding sites with different affinities.
Conclusions:
- Amphipathic CRAC-containing peptides from M1 protein modulate lipid raft-dependent processes in macrophages.
- These peptides influence macrophage phagocytosis, potentially impacting host-pathogen interactions.
- Findings highlight the role of cholesterol-recognizing motifs in viral protein function and host cell processes.
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